how to calculate mean and variance of the image using W*W sliding window

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contrast enhancement is to improve the contrast of lesions for detection using a w*w sliding window with assumption that w is large enough to contain a statistically representative distribution of the local variation of lesions. where the sigmoid function used with the maximum and minimum intensity values of smooth green channel image,respectively. mean and variance of intensity values with in the window.
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Accepted Answer

Image Analyst
Image Analyst on 21 Aug 2013
Try this:
meanImage = conv2(grayImage, ones(w)/w^2);
stdDevImage = stdfilt(grayImage, ones(w)/w^2);
varianceIMage = stdDevImage .^2;
  10 Comments
kalaivaani
kalaivaani on 26 Aug 2013
the error showing is * ??? Error using ==> mldivide * Matrix dimensions must agree. * what should i do how can i code the formula sigmoid function formula is 1 / {[1+exp((M-I)/V)]} were M is the meanimage, V is the varianceimage , I is the color image * and my code is sigmoid = 1/(1+exp((double(meanImage)-double(green))./double(sdImage))); * is it correct?
Image Analyst
Image Analyst on 27 Aug 2013
Use the 'same' option in conv2 to get the same size image.
meanImage = conv2(grayImage, ones(w)/w^2, 'same');

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